Energy storage multi-path dry reed relay
By introducing heat dissipation and lubrication components into the multi-channel reed relay, and utilizing the expansion of inert gas to drive the piston plate to move, automatic heat dissipation and position adjustment of the reed switches are achieved, solving the problem of overheating of the multi-channel reed switches and improving the stability and synchronous control capability of the device.
Patent Information
- Application Number
- CN202511453179.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-13
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2045-10-13
AI Technical Summary
Existing multi-channel reed relays are prone to overheating due to heat accumulation when multiple reeds are clustered together, which affects working efficiency and reliability.
An energy storage multi-channel reed relay was designed, employing heat dissipation and lubrication components. The piston plate is moved by the expansion of inert gas, causing the reeds to move away from each other for heat dissipation. Airflow is sprayed to cool the reeds, and lubricating oil is used to reduce friction, ensuring the stability of the device.
It effectively prevents overheating, improves the heat dissipation efficiency of the reed switch and the stability of the device, avoids failures caused by overheating, and ensures the synchronization and reliability of multi-channel control.
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Figure CN120933120B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application belongs to the technical field of relays, and particularly relates to an energy storage multi-path dry reed relay. BACKGROUND
[0002] As a commonly used control component, a relay can be used to control a larger current with a smaller current, control a high voltage with a low voltage, control alternating current with direct current, and realize the isolation of a control circuit and a controlled circuit, and is widely applied to automatic control, remote control, protection circuit and the like. A traditional electromagnetic relay is a kind of electrical relay which works by using the suction force generated between an electromagnetic iron core and an armature in an input circuit. Such a relay has a large size, slow action, and limited reliability and service life. With the development of electronic appliances towards miniaturization and micro-miniaturization, new requirements are put forward for relays. By placing a dry reed tube in a coil, a dry reed relay can be obtained. As a new type of relay, the dry reed relay can meet the needs of development in many aspects.
[0003] A multi-path dry reed relay disclosed in a prior art document with the document number CN222355037U comprises a coil framework, a coil is arranged outside the coil framework, at least two dry reed tubes are arranged in the coil framework, the dry reed tube comprises a reed, a first circuit board is arranged at the front end and the rear end of the dry reed tube in the axial direction of the dry reed tube, a second circuit board is arranged between the two first circuit boards, lines are printed on the first circuit board and the second circuit board and are in communication, the reed is connected to the first circuit board, the coil comprises an electrical connection end, the electrical connection end is connected to the first circuit board or the second circuit board, and a lead-out pin corresponding to the reed and the electrical connection end is arranged on the second circuit board. The multi-path dry reed tube provided in the application uses the lines prearranged on the printed circuit board to replace the traditional wiring mode, so that the wiring inside the relay can be omitted, thereby being conducive to the miniaturization of the relay, facilitating the automatic production of the product, and improving the production efficiency and reliability of the product.
[0004] Although the above application can make the relay be designed to be small, due to the need to save space, multiple dry reed tubes are gathered together for connection. In this process, multiple dry reed tubes work at the same time, and the current or voltage may increase, especially when multiple dry reed tubes are connected in parallel in the circuit, the overall current load may be too large. This may cause the current to be too large, generate a resistance heat effect, cause the temperature of the element to rise, and thus cause an overheating phenomenon. The working efficiency of the dry reed tube is affected. SUMMARY
[0005] To solve the problem of heat accumulation and overheating in the background art, when multiple dry reed valves are gathered together, heat conduction between them can cause local temperature accumulation without sufficient cooling or heat dissipation measures. In this case, the heat on the surface of the dry reed valve cannot be effectively dissipated, leading to temperature rise and eventually causing overheating. The present application provides a multi-path dry reed valve relay with energy storage.
[0006] To achieve the above purpose, the present application provides the following technical scheme: a multi-path dry reed valve relay with energy storage, comprising a pin base and a relay shell, the relay shell is clamped on the outer wall of the pin base, the top of the pin base is fixedly connected with a circuit board on both sides, one side of the circuit board is fixedly connected with four fixing rods, the four fixing rods are arranged in a group, further comprising a multi-path dry reed valve mechanism, the multi-path dry reed valve mechanism comprises a multi-path shell fixedly connected between the two groups of fixing rods, a cross hole is formed in one side of the multi-path shell, a fixed frame ring is fixedly connected to the center of the inner wall of the cross hole, a heat dissipation assembly is arranged on the inner wall of the fixed frame ring to prevent the multi-path dry reed valve mechanism from overheating.
[0007] Preferably, the heat dissipation assembly comprises a heat conduction shell fixedly connected to the inner wall of the fixed frame ring, two piston plates are slidably connected to the inner wall of the heat conduction shell, and a tension spring is fixedly connected between the two piston plates.
[0008] Preferably, one side of the piston plate is fixedly connected with a cross bar, one end of the cross bar away from the piston plate is fixedly connected with a connecting block, and four rotating plates are hingedly connected around one side of the connecting block.
[0009] Preferably, one end of the rotating plate is hingedly connected with a sliding block, four sliding grooves are formed around one side of the circuit board, a rolling ball is rotatably connected to the inner wall of one end of the sliding block, and the outer wall of the rolling ball is slidably connected to the inner wall of the sliding groove.
[0010] Preferably, one side of the sliding block is fixedly connected with a connecting plate, one end of the connecting plate away from the sliding block is fixedly connected with a connecting frame ring, a dry reed valve is fixedly connected to the inner wall of the connecting frame ring, the connecting frame ring is slidably connected to the inner wall of the cross hole, and the two ends of the dry reed valve are fixedly connected with electromagnetic wires, one end of the electromagnetic wires is welded to the side wall of the circuit board.
[0011] Preferably, the end of the heat conduction shell is provided with a lubricating assembly, the lubricating assembly comprises a liquid storage shell fixedly connected to the two ends of the heat conduction shell, and a first sealing ring is fixedly connected to one side of the inner wall of the liquid storage shell.
[0012] Preferably, the inner wall of the heat-conducting shell is fixedly connected with a second sealing ring on both sides, one end of the horizontal rod penetrates the first sealing ring and the second sealing ring, during the reciprocating movement of the horizontal rod, the inside of the liquid storage shell is filled with lubricating oil, when the horizontal rod moves, it will contact with the lubricating oil, which can reduce the resistance generated by the movement of the horizontal rod, improve the stability of the device operation, and prevent the occurrence of the clamping phenomenon.
[0013] Preferably, the side wall of the connecting frame ring is provided with an auxiliary assembly, the auxiliary assembly comprises four strip-shaped plates fixedly connected between the two connecting frame rings, and the side wall of one of the strip-shaped plates is fixedly connected with a square plate.
[0014] Preferably, one end of the square plate is fixedly connected with a sliding plate, the outer wall of the sliding plate is slidingly connected with a square shell, and the outer wall of the square shell is fixedly connected with the inner wall of one end of the cross hole.
[0015] Preferably, a plurality of telescopic pipes are communicated with one side of the sliding plate, one end of the telescopic pipe is communicated with one side of the outer wall of the square shell, and airflow is sprayed to the gradually close outer wall of the dry reed through the telescopic pipe, so as to reduce the heat emitted by the outer wall of the dry reed.
[0016] Compared with the prior art, the beneficial effects of the present application are as follows:
[0017] The application can improve the efficiency of the system, reduce the complex wiring, and ensure that the working state of each dry reed can be controlled. It can also ensure that they are synchronized under the action of the same control signal. This synchronization is very important for multi-channel control, avoiding the problem of delayed switching or asynchronous of some channels, especially in high-demand applications. By arranging multiple dry reeds inside the cross hole, the dry reeds are used for synchronous control of multiple power supplies. When the dry reed works for a long time, the center of the cross hole will overheat due to the close proximity of multiple dry reeds. The inert gas in the spring area of the heat-conducting shell will expand due to the heat. The inert gas will expand at about 25°C / 298K at room temperature. As the temperature gradually rises, the expansion effect is more pronounced. At this time, the expansion gas causes the two piston plates inside the heat-conducting shell to move away from each other. The piston plates move the crossbar and the connecting block. The connecting block moves the rotating plate and the slider. The slider moves the ball along the inner wall of the sliding groove. At the same time, the slider moves the connecting plate. The connecting plate moves the connecting frame ring. The connecting frame ring moves the dry reed along the inner wall of the cross hole. Multiple dry reeds move away from each other, thereby improving the heat dissipation efficiency and reducing the temperature of the dry reed. The automatic moving away and adjusting position process can effectively reduce the risk of overheating of the dry reed and prevent the power control system from malfunctioning. The process can detect the temperature of the heat and move the multiple dry reeds away from each other as the heat gradually rises, preventing multiple dry reeds from gathering in a high-temperature area for a long time, and improving the protection effect of the dry reed.
[0018] The application can improve the efficiency of the system, reduce the complex wiring, and ensure that the working state of each dry reed can be controlled. It can also ensure that they are synchronized under the action of the same control signal. This synchronization is very important for multi-channel control, avoiding the problem of delayed switching or asynchronous of some channels, especially in high-demand applications. By arranging multiple dry reeds inside the cross hole, the dry reeds are used for synchronous control of multiple power supplies. When the dry reed works for a long time, the center of the cross hole will overheat due to the close proximity of multiple dry reeds. The inert gas in the spring area of the heat-conducting shell will expand due to the heat. The inert gas will expand at about 25°C / 298K at room temperature. As the temperature gradually rises, the expansion effect is more pronounced. At this time, the expansion gas causes the two piston plates inside the heat-conducting shell to move away from each other. The piston plates move the crossbar and the connecting block. The connecting block moves the rotating plate and the slider. The slider moves the ball along the inner wall of the sliding groove. At the same time, the slider moves the connecting plate. The connecting plate moves the connecting frame ring. The connecting frame ring moves the dry reed along the inner wall of the cross hole. Multiple dry reeds move away from each other, thereby improving the heat dissipation efficiency and reducing the temperature of the dry reed. The automatic moving away and adjusting position process can effectively reduce the risk of overheating of the dry reed and prevent the power control system from malfunctioning. The process can detect the temperature of the heat and move the multiple dry reeds away from each other as the heat gradually rises, preventing multiple dry reeds from gathering in a high-temperature area for a long time, and improving the protection effect of the dry reed.
[0019] The application sets up the cooperation of the heat radiation assembly and the auxiliary assembly, when the overheating phenomenon appears, the connecting frame ring drives the reed tube and the strip-shaped plate to move on the inner wall of the cross-shaped hole, the strip-shaped plate drives the square plate and the sliding plate to move, the sliding plate moves in the interior of the square shell, the sliding plate extrudes the airflow in the tubeless area of the square shell, the airflow enters the interior of the telescopic tube, the airflow sprays the gradually close reed tube outer wall through the telescopic tube, reduces the heat radiation of the reed tube outer wall, and can make the airflow in the relay shell circulate, because the relay shell is not a completely sealed shell, the circulating airflow can exchange with the outside air, thereby reducing the temperature of the device interior, realizing temperature balance and cooling, and preventing the temperature from being too high due to complete sealing. BRIEF DESCRIPTION OF DRAWINGS
[0020] Figure 1 It is the sectional view structure schematic diagram of the relay shell of the application;
[0021] Figure 2 It is the overhead structure schematic diagram of the pin base of the application;
[0022] Figure 3 It is the electromagnetic wire side structure schematic diagram of the application;
[0023] Figure 4 It is the application Figure 3 The enlarged view of A;
[0024] Figure 5 It is the fixed rod side structure schematic diagram of the application;
[0025] Figure 6 It is the application Figure 5 The enlarged view of B;
[0026] Figure 7 It is the multi-path shell side structure schematic diagram of the application;
[0027] Figure 8 It is the fixed frame ring side structure schematic diagram of the application;
[0028] Figure 9 It is the application Figure 8 The enlarged view of C;
[0029] Figure 10 It is the square shell overhead structure schematic diagram of the application.
[0030] In the diagram: 1. Pin base; 2. Relay housing; 3. Circuit board; 4. Fixing rod; 5. Multi-channel reed switch mechanism; 51. Multi-channel housing; 52. Cross hole; 53. Fixing ring; 54. Heat dissipation assembly; 55. Lubrication assembly; 56. Auxiliary assembly; 541. Heat-conducting housing; 542. Piston plate; 543. Tension spring; 544. Crossbar; 545. Connecting block; 546. Rotating plate; 547. Slider; 548. Ball bearing; 549. Slide groove; 5410. Connecting plate; 5411. Connecting ring; 5412. Reed switch; 5413. Electromagnetic wire; 551. Liquid reservoir; 552. First sealing ring; 553. Second sealing ring; 561. Strip plate; 562. Square plate; 563. Sliding plate; 564. Square housing; 565. Telescopic tube. Detailed Implementation
[0031] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0032] like Figures 1 to 10 As shown, the present invention provides an energy storage multi-channel reed relay, including a pin base 1 and a relay housing 2. The relay housing 2 is snapped onto the outer wall of the pin base 1. A circuit board 3 is fixedly connected to both sides of the top of the pin base 1. Four fixing rods 4 are fixedly connected to one side of the circuit board 3 respectively. The four fixing rods 4 are arranged in a group. The present invention also includes:
[0033] The multi-channel reed switch mechanism 5 includes a multi-channel housing 51 fixedly connected between two sets of fixed rods 4. A cross hole 52 is opened on one side of the multi-channel housing 51. A fixed bracket ring 53 is fixedly connected at the center of the inner wall of the cross hole 52. A heat dissipation component 54 is provided on the inner wall of the fixed bracket ring 53 to prevent the multi-channel reed switch mechanism 5 from overheating.
[0034] The above scheme is adopted: multiple reed switches 5412 are set in the cross hole 52, and electromagnetic wires 5413 are fixed at both ends of the reed switches 5412. The multiple electromagnetic wires 5413 are soldered to the same circuit board 3 for synchronous control of multiple power sources.
[0035] The heat dissipation assembly 54 includes a heat-conducting shell 541 fixedly connected to the inner wall of the fixing ring 53. Piston plates 542 are slidably connected to both sides of the inner wall of the heat-conducting shell 541, and a tension spring 543 is fixedly connected between the two piston plates 542.
[0036] One side of the piston plate 542 is fixedly connected with a cross rod 544, one end of the cross rod 544 away from the piston plate 542 is fixedly connected with a connecting block 545, and four rotating plates 546 are hingedly connected around one side of the connecting block 545.
[0037] One end of the rotating plate 546 is hingedly connected with a sliding block 547, four sliding grooves 549 are formed around one side of the circuit board 3, and the inner wall of one end of the sliding block 547 is rotatably connected with a ball 548, and the outer wall of the ball 548 is slidably connected to the inner wall of the sliding groove 549.
[0038] The above scheme is adopted: because the sliding groove 549 is arranged on the side wall of the circuit board 3, when the sliding block 547 drives the ball 548 to move in the inner wall of the sliding groove 549, the ball 548 rotates in the sliding block 547, thereby reducing the friction generated when the ball 548 contacts the sliding groove 549.
[0039] One side of the sliding block 547 is fixedly connected with a connecting plate 5410, one end of the connecting plate 5410 away from the sliding block 547 is fixedly connected with a connecting frame ring 5411, the inner wall of the connecting frame ring 5411 is fixedly connected with a reed 5412, the outer wall of the connecting frame ring 5411 is slidably connected to the inner wall of the cross hole 52, and both ends of the reed 5412 are fixedly connected with an electromagnetic wire 5413, and one end of the electromagnetic wire 5413 is welded to the side wall of the circuit board 3.
[0040] The above scheme is adopted: multiple reeds 5412 are too close, causing the center of the cross hole 52 to overheat, causing the inert gas in the heat-conducting shell 541 to expand. The gas expansion causes the piston plates 542 to move away from each other, driving the cross rod 544 and the connecting block 545 to move, thereby pushing the rotating plate 546 and the sliding block 547 to slide. The sliding block 547 drives the ball 548 to slide in the sliding groove 549, and drives the connecting plate 5410 and the connecting frame ring 5411 to move, finally causing the reed 5412 to slide in the cross hole 52, away from each other, thereby improving the heat dissipation efficiency.
[0041] As shown in Figures 1 to 10 The end of the heat-conducting shell 541 is provided with a lubricating assembly 55, the lubricating assembly 55 comprises liquid storage shells 551 fixedly connected to both ends of the heat-conducting shell 541, and a first sealing ring 552 is fixedly connected to one side of the inner wall of the liquid storage shell 551.
[0042] Second sealing rings 553 are fixedly connected to both sides of the inner wall of the heat-conducting shell 541, and one end of the cross rod 544 penetrates through the first sealing ring 552 and the second sealing ring 553.
[0043] The above scheme is adopted: during the reciprocating movement of the cross rod 544, because the liquid storage shell 551 contains lubricating oil, the cross rod 544 contacts the lubricating oil, reducing the resistance during movement, thereby improving the stability of the device operation.
[0044] The side wall of the connecting frame ring 5411 is provided with an auxiliary assembly 56, which comprises four strip-shaped plates 561 fixedly connected between the two connecting frame rings 5411, and the side wall of one of the strip-shaped plates 561 is fixedly connected with a square plate 562.
[0045] One end of the square plate 562 is fixedly connected with a sliding plate 563, and the outer wall of the sliding plate 563 is slidingly connected with a square shell 564, and one side of the outer wall of the square shell 564 is fixedly connected with the inner wall of one end of the cross hole 52.
[0046] One side of the sliding plate 563 is communicated with a plurality of telescopic pipes 565, and one end of the telescopic pipe 565 is communicated with one side of the outer wall of the square shell 564.
[0047] By adopting the above scheme, the connecting frame ring 5411 drives the reed tube 5412 and the strip-shaped plate 561 to move in the inner wall of the cross hole 52, and the strip-shaped plate 561 further drives the square plate 562 and the sliding plate 563 to move. When the sliding plate 563 moves in the square shell 564, the airflow in the square shell 564 is extruded, so that the airflow enters the telescopic pipe 565 and is sprayed to the outer wall of the gradually close reed tube 5412, so as to reduce the temperature of the outer wall of the reed tube 5412.
[0048] The working principle and use process of the present application are as follows:
[0049] In the multi-path dry reed 5412 design, multiple dry reeds 5412 can share a magnetic field source. By gathering together, the dry reeds 5412 can work simultaneously under the unified control signal. This design can improve the efficiency of the system, reduce the complex wiring, and ensure that the working state of each dry reed 5412 can be controlled. And also can ensure that they are synchronized switching under the same control signal. This synchronization is very important for multi-path control, to avoid some channels delay switching or out of sync problems, especially in high demand applications. By arranging multiple dry reeds 5412 inside the cross hole 52, the two ends of the dry reed 5412 are fixed with the electromagnetic wire 5413, and multiple electromagnetic wires 5413 are welded on a circuit board 3 for synchronous control of multiple power supply. When the dry reed 5412 works for a long time, due to the close proximity of multiple dry reeds 5412, the center of the cross hole 52 will overheat, causing the inert gas in the spring area inside the heat-conducting shell 541 to expand. The inert gas will expand at room temperature of about 25°C / 298K, and the expansion effect will be more pronounced as the temperature gradually rises. At this time, the expansion gas makes the two piston plates 542 inside the heat-conducting shell 541 move away from each other. The piston plate 542 drives the cross rod 544 and the connecting block 545 to move, the connecting block 545 drives the rotating plate 546 and the sliding block 547 to move, the sliding block 547 drives the ball 548 to slide on the inner wall of the sliding groove 549, and the sliding block 547 drives the connecting plate 5410 to move. The connecting plate 5410 drives the connecting frame ring 5411 to move, and the connecting frame ring 5411 drives the dry reed 5412 to slide on the inner wall of the cross hole 52. Multiple dry reeds 5412 move away from each other, thereby improving the heat dissipation efficiency and reducing the temperature of the dry reed 5412. The automatic moving away and adjusting position process can effectively reduce the risk of overheating of the dry reed 5412 and prevent the power control system from malfunctioning. And in this process, the temperature of the heat can be detected, and multiple dry reeds 5412 can move away from each other as the heat gradually rises, preventing multiple dry reeds 5412 from gathering in a high-temperature area for a long time, thereby improving the protection effect of the dry reed 5412. In the process of moving away and gathering of multiple dry reeds 5412, multiple dry reeds 5412 can be continuously controlled by the circuit board 3, which will not affect the control stability of the circuit.
[0050] Since the sliding groove 549 is opened at the side wall of the circuit board 3, when the sliding block 547 drives the ball 548 to move in the inner wall of the sliding groove 549, since the ball 548 rotates in the inside of the sliding block 547, the friction generated by the contact between the ball 548 and the sliding groove 549 can be reduced, the stability of the device operation is improved, the jamming phenomenon is prevented, and the inert gas in the heat-conducting shell 541 is prevented from leaking due to the sealing of the second sealing ring 553 to the heat-conducting shell 541 and the sealing of the first sealing ring 552 to the liquid storage shell 551. When the temperature gradually decreases, the horizontal rod 544 is elastically deformed by the tension spring 543, the tension spring 543 drives the piston plate 542 and the horizontal rod 544 to approach each other, at this time, the plurality of reed tubes 5412 can be gathered together again, the position of the reed tube 5412 is automatically adjusted, and the plurality of reed tubes 5412 are gathered together again. This process helps the temperature recovery and heat redistribution of the system, avoids excessive heat dissipation when overheating, and can also adjust and maintain the appropriate working temperature. And in the process of reciprocating movement of the horizontal rod 544, since the inside of the liquid storage shell 551 is filled with lubricating oil, when the horizontal rod 544 moves, it will contact with the lubricating oil, which can reduce the resistance generated by the movement of the horizontal rod 544, improve the stability of the device operation, and prevent the jamming phenomenon.
[0051] When overheating occurs, the connecting frame ring 5411 drives the reed tube 5412 and the strip-shaped plate 561 to move in the inner wall of the cross-shaped hole 52, the strip-shaped plate 561 drives the square plate 562 and the sliding plate 563 to move, the sliding plate 563 moves in the inside of the square shell 564, the sliding plate 563 extrudes the airflow in the tube-free area inside the square shell 564, so that the airflow enters the inside of the telescopic tube 565, and the airflow is sprayed to the outer wall of the gradually approaching reed tube 5412 through the telescopic tube 565, so as to reduce the heat dissipation of the outer wall of the reed tube 5412, and the airflow in the inside of the relay shell 2 can circulate. Since the relay shell 2 is not a completely sealed shell, at this time, the circulating airflow can exchange with the air outside, so as to cool the temperature inside the device, realize temperature balance and cooling, and prevent the temperature from being too high due to complete sealing.
[0052] It should be noted that in this paper, relationship terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between the entities or operations. Moreover, the terms "include", "contain" or any other variant thereof are intended to cover non-exclusive inclusion, so that the process, method, article or equipment including a series of elements not only includes those elements, but also includes other elements not explicitly listed or inherent to such process, method, article or equipment.
[0053] While embodiments of the application have been shown and described, it is to be understood that the embodiments described are merely exemplary of the principles and application of the present application. Numerous modifications and adaptions can be effected without departing from the spirit and scope of the present application, which is not limited to the exact construction and arrangement described. It is intended, therefore, to cover all modifications and adaptions that fall within the scope of the claims and their equivalents.
Claims
1. A multi-channel reed relay for energy storage, comprising a pin base (1) and a relay housing (2), wherein the relay housing (2) is snapped onto the outer wall of the pin base (1), and circuit boards (3) are fixedly connected to both sides of the top of the pin base (1), and four fixing rods (4) are fixedly connected to one side of each circuit board (3), wherein the four fixing rods (4) are arranged in a group, characterized in that: Also includes; The multi-path dry reed mechanism (5) includes a multi-path shell (51) fixedly connected between the two groups of fixed rods (4), one side of the multi-path shell (51) is provided with a cross hole (52), the inner wall center of the cross hole (52) is fixedly connected with a fixed frame ring (53), and the inner wall of the fixed frame ring (53) is provided with a heat dissipation assembly (54) for preventing the multi-path dry reed mechanism (5) from overheating; The heat dissipation assembly (54) includes a heat conduction shell (541) fixedly connected to the inner wall of the fixed frame ring (53), and the inner wall of the heat conduction shell (541) is slidably connected with a piston plate (542) on both sides. One side of the piston plate (542) is fixedly connected with a cross bar (544), one end of the cross bar (544) away from the piston plate (542) is fixedly connected with a connecting block (545), and four rotating plates (546) are hingedly connected around one side of the connecting block (545). One end of the rotating plate (546) is hingedly connected with a sliding block (547), four sliding grooves (549) are formed around one side of the circuit board (3), and a rolling ball (548) is rotatably connected to the inner wall of one end of the sliding block (547). The outer wall of the rolling ball (548) is slidably connected to the inner wall of the sliding groove (549).
2. The energy-storing multiway dry reed relay according to claim 1, wherein: One side of the sliding block (547) is fixedly connected with a connecting plate (5410), one end of the connecting plate (5410) away from the sliding block (547) is fixedly connected with a connecting frame ring (5411), the inner wall of the connecting frame ring (5411) is fixedly connected with a dry Reed (5412), the outer wall of the connecting frame ring (5411) is slidably connected to the inner wall of the cross hole (52), and the two ends of the dry Reed (5412) are fixedly connected with electromagnetic wires (5413), and one end of the electromagnetic wires (5413) is welded to the side wall of the circuit board (3).
3. The energy-storing multiway dry reed relay according to claim 2, wherein: The end of the heat conduction shell (541) is provided with a lubricating assembly (55), the lubricating assembly (55) includes a liquid storage shell (551) fixedly connected to both ends of the heat conduction shell (541), and a first sealing ring (552) is fixedly connected to one side of the inner wall of the liquid storage shell (551).
4. The energy-storing multiway dry reed relay according to claim 3, wherein: Second sealing rings (553) are fixedly connected to the inner walls of the heat conduction shell (541) on both sides, and one end of the cross bar (544) penetrates the first sealing ring (552) and the second sealing ring (553).
5. The energy-storing multiway dry reed relay according to claim 4, wherein: The side wall of the connecting frame ring (5411) is provided with an auxiliary assembly (56), the auxiliary assembly (56) includes four strip plates (561) fixedly connected between the two connecting frame rings (5411), and a square plate (562) is fixedly connected to the side wall of one of the strip plates (561). One end of the square plate (562) is fixedly connected with a sliding plate (563), the outer wall of the sliding plate (563) is slidably connected with a square shell (564), and one side of the outer wall of the square shell (564) is fixedly connected to the inner wall of one end of the cross hole (52).
6. The energy-storing multiway dry reed relay according to claim 5, wherein: One side of the sliding plate (563) is communicated with a plurality of telescopic pipes (565), one end of the telescopic pipe (565) is communicated on one side of the outer wall of the square shell (564).
Citation Information
Patent Citations
Multipath reed switch relay
CN222355037U
Multipath reed switch relay combination
CN118553558A
Anti-interference miniature circuit breaker and use method thereof
CN119601431A